Water permeable brick base reinforcing agent stirring mechanism
By designing a layered mixing mechanism, the problems of existing mixing devices being unable to perform layered mixing and material transfer are solved, thus achieving efficient material handling.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- XIAMEN MEIYI GREEN BUILDING TECH CO LTD
- Filing Date
- 2025-04-10
- Publication Date
- 2026-04-21
AI Technical Summary
Existing stirring devices cannot perform stratified stirring and material transfer, resulting in an inefficient preparation process.
A mixing mechanism for a permeable brick base reinforcement agent was designed, including a first drive shaft, a second drive shaft, and first and second control plate assemblies. By setting mixing blades and a rotating plate structure, layered mixing and material transfer are achieved.
It achieves layered mixing and material transfer, improving preparation efficiency and enhancing mixing effect.
Smart Images

Figure CN224141927U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to a mixing mechanism for a permeable brick base reinforcement agent. Background Technology
[0002] In the traditional process of preparing permeable brick base reinforcement agents, it is usually necessary to stir and heat the reinforcement agent.
[0003] The existing stirring preparation device cannot perform stratified stirring, nor can it handle the transfer of materials during the stratified stirring process. Utility Model Content
[0004] The purpose of this invention is to provide a stirring device that can perform layered stirring and material transfer at the same time.
[0005] To solve the above problems, this utility model provides a mixing mechanism for a permeable brick base reinforcement agent, comprising:
[0006] The first drive shaft is provided with a first shaft body, a second shaft body and a third shaft body arranged sequentially from top to bottom. The first shaft body is connected to the drive mechanism, and stirring blades are provided on the second shaft body and the third shaft body.
[0007] The second drive shaft is sleeved on the first shaft body;
[0008] The first control board assembly includes a first rotating plate fixedly mounted on the second drive shaft and a first fixed plate fixedly mounted below the first rotating plate. The first fixed plate is provided with a first discharge port. The first drive shaft passes through a first through hole on the first fixed plate. The first rotating plate covers the first fixed plate and is provided with a first opening penetrating its upper and lower surfaces. By rotating the first rotating plate, the first opening can be positioned directly above the first discharge port.
[0009] The second control board assembly includes a second rotating plate that is pulsatorically connected to the first rotating plate, and a second fixed plate located below the second rotating plate and fixedly disposed thereon. The second fixed plate is provided with a second discharge port. The first drive shaft passes through a second through hole on the second fixed plate. The second rotating plate covers the second fixed plate and is provided with a second opening that penetrates its upper and lower surfaces. By rotating the second rotating plate, the second opening can be positioned directly above the second discharge port.
[0010] As a further improvement to this utility model,
[0011] Both the first and second discharge ports are fan-shaped, and their curvature is less than or equal to degrees. The second discharge port is located directly below the first discharge port.
[0012] The first opening is provided in two parts, both of which are fan-shaped structures with arc-shaped dimensions, and the two first openings simultaneously satisfy both central symmetry and axial symmetry;
[0013] The second opening has a semi-circular structure.
[0014] As a further improvement of this utility model, the first rotating plate and the second rotating plate are connected by at least two vertical connecting rods.
[0015] As a further improvement of this utility model, the stirring blades are spiral-shaped.
[0016] As a further improvement of this utility model, the first drive shaft is driven to rotate by a motor.
[0017] The beneficial effects of this utility model are as follows: a first rotating shaft is provided, and stirring blades are provided on the second and third shafts of the first rotating shaft to achieve graded stirring. In addition, a first control plate assembly and a second control plate assembly are provided. The first rotating plate and the second rotating plate are driven to rotate by the rotation of the second drive shaft, so that the first discharge port and the second discharge port are exposed, thereby realizing the material flowing from the upper layer to the lower layer. Attached Figure Description
[0018] Figure 1 This is a schematic diagram of the structure of this utility model;
[0019] Figure 2 This is a schematic diagram of the structure of the first control board assembly in this utility model;
[0020] Figure 3 This is a schematic diagram of the structure of the second control board assembly in this utility model;
[0021] Figure 4 This is a schematic diagram of the rotation of the first control board assembly and the second control board assembly in this utility model.
[0022] In the figure: 300-first drive shaft; 302-first shaft body; 304-second shaft body; 306-third shaft body; 308-second drive shaft; 310-first rotating plate; 312-first fixed plate; 314-first discharge port; 316-second rotating plate; 318-second fixed plate; 320-second discharge port; 322-connecting rod. Detailed Implementation
[0023] The technical solution of this utility model will be further described below with reference to the accompanying drawings and specific embodiments.
[0024] like Figure 1-4As shown, the present invention includes a first drive shaft 300, wherein a first shaft body 302, a second shaft body 304 and a third shaft body 306 are arranged sequentially from top to bottom. The first shaft body 302 is connected to the drive mechanism, and stirring blades are arranged on the second shaft body 304 and the third shaft body 306.
[0025] The second drive shaft 308 is sleeved on the first shaft body 302;
[0026] The first control board assembly includes a first rotating plate 310 fixedly mounted on the second drive shaft 308, and a first fixed plate 312 fixedly mounted below the first rotating plate 310. The first fixed plate 312 is provided with a first discharge port 314. The first drive shaft 300 passes through a first through hole on the first fixed plate 312. The first rotating plate 310 covers the first fixed plate 312 and is provided with a first opening penetrating its upper and lower surfaces. By rotating the first rotating plate 310, the first opening can be positioned directly above the first discharge port 314.
[0027] The second control plate assembly includes a second rotating plate 316 that is pulsatorically connected to the first rotating plate 310, and a second fixed plate 318 located below the second rotating plate 316 and fixedly disposed thereon. The second fixed plate 318 is provided with a second discharge port 320. The first drive shaft 300 passes through a second through hole on the second fixed plate 318. The second rotating plate 316 covers the second fixed plate 318 and is provided with a second opening that penetrates its upper and lower surfaces. By rotating the second rotating plate 316, the second opening can be positioned directly above the second discharge port 320.
[0028] In this invention, a first rotating shaft is provided, and stirring blades are provided on the second shaft body 304 and the third shaft body 306 of the first rotating shaft to achieve graded stirring. In addition, a first control plate assembly and a second control plate assembly are provided. The first rotating plate 310 and the second rotating plate 316 are rotated by the rotation of the second drive shaft 308, so that the first discharge port 314 and the second discharge port 320 are exposed, thereby realizing the flow of material from the upper layer to the lower layer.
[0029] As a further improvement to this utility model,
[0030] The first discharge port 314 and the second discharge port 320 are both fan-shaped, and the arc is less than or equal to degrees. The second discharge port 320 is located directly below the first discharge port 314.
[0031] The first opening is provided in two parts, both of which are fan-shaped structures with arc-shaped dimensions, and the two first openings simultaneously satisfy both central symmetry and axial symmetry;
[0032] The second opening has a semi-circular structure.
[0033] This utility model has four workstations, as follows: Figure 4 As shown, at the first station (upper left), both the first discharge port 314 and the second discharge port 320 are exposed; at the second station (lower left), both the first discharge port 314 and the third discharge port are closed; at the third station (lower right), the first discharge port 314 is exposed and the second discharge port 320 is closed; at the fourth station (upper right), the first discharge port 314 is closed and the second discharge port 320 is exposed. This represents one counterclockwise rotation of the second rotating shaft.
[0034] As a further improvement of this utility model, the first rotating plate 310 and the second rotating plate 316 are connected by at least two vertical connecting rods 322.
[0035] A connecting rod 322 is provided to transmit torque between the first rotating plate 310 and the second rotating plate 316.
[0036] As a further improvement of this utility model, the stirring blades are spiral-shaped.
[0037] The spiral-shaped stirring blades result in higher stirring efficiency.
[0038] As a further improvement of this utility model, the first drive shaft 300 is driven to rotate by a motor.
[0039] The first drive shaft 300 is a motor, which enables the automatic rotation of the first drive shaft 300.
[0040] The technical principles of this utility model have been described above with reference to specific embodiments. These descriptions are merely for explaining the principles of this utility model and should not be construed as limiting the scope of protection of this utility model in any way. Based on this explanation, those skilled in the art can readily conceive of other specific embodiments of this utility model without any inventive effort, and these embodiments will all fall within the scope of protection of this utility model.
Claims
1. A mixing mechanism for a permeable brick base reinforcement agent, characterized in that, include: A first drive shaft (300) is provided with a first shaft body (302), a second shaft body (304) and a third shaft body (306) arranged sequentially from top to bottom. The first shaft body (302) is connected to the drive mechanism, and stirring blades are provided on the second shaft body (304) and the third shaft body (306). The second drive shaft (308) is sleeved on the first shaft body (302); The first control board assembly includes a first rotating plate (310) fixedly mounted on the second drive shaft (308) and a first fixed plate (312) fixedly mounted below the first rotating plate (310). The first fixed plate (312) is provided with a first discharge port (314). The first drive shaft (300) passes through a first through hole on the first fixed plate (312). The first rotating plate (310) covers the first fixed plate (312) and is provided with a first opening penetrating its upper and lower surfaces. By rotating the first rotating plate (310), the first opening can be positioned directly above the first discharge port (314). The second control board assembly includes a second rotating plate (316) that is pulverically connected to the first rotating plate (310), and a second fixed plate (318) located below the second rotating plate (316) and fixedly disposed thereon. The second fixed plate (318) is provided with a second discharge port (320). The first drive shaft (300) passes through a second through hole on the second fixed plate (318). The second rotating plate (316) covers the second fixed plate (318) and is provided with a second opening that penetrates its upper and lower surfaces. By rotating the second rotating plate (316), the second opening can be positioned directly above the second discharge port (320).
2. The mixing mechanism for a permeable brick base reinforcement agent according to claim 1, characterized in that, The first discharge port (314) and the second discharge port (320) are both fan-shaped, and the arc is less than or equal to 90 degrees. The second discharge port (320) is located directly below the first discharge port (314). There are two first openings, both of which are fan-shaped structures with an arc of 90 degrees. The two first openings simultaneously satisfy both central symmetry and axial symmetry. The second opening has a semi-circular structure.
3. The pervious brick base reinforcement admixture mixing mechanism of claim 2, wherein, The first rotating plate (310) and the second rotating plate (316) are connected by at least two vertical connecting rods (322).
4. The pervious brick base reinforcement admixture mixing mechanism of claim 3, wherein, The stirring blades are spiral-shaped.
5. The pervious brick base reinforcement admixture mixing mechanism of claim 4, wherein, The first drive shaft (300) is driven to rotate by a motor.